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Erschienen in: Integrating Materials and Manufacturing Innovation 4/2019

18.11.2019 | Technical Article

Estimation of Errors in Stress Distributions Computed in Finite Element Simulations of Polycrystals

verfasst von: Kamalika Chatterjee, Robert A. Carson, Paul R. Dawson

Erschienen in: Integrating Materials and Manufacturing Innovation | Ausgabe 4/2019

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Abstract

The accuracy of the stresses predicted from crystal plasticity-based finite element formulation depends on estimation and control of the errors associated with the discretization. In the current work, the errors in the stress distribution are estimated in virtual polycrystalline samples of α-phase titanium (hexagonal close-packed phase of Ti–6Al–4V). To estimate the error, the stress field, which does not possess inter-element continuity, is smoothed over a grain using an \(L_2\) projection, thereby providing continuous stress distributions with inter-element continuity. The differences between the continuous (smooth) and discontinuous (raw) stress fields are calculated at individual Gauss quadrature points and used to estimate errors for corresponding elements and grains. Error estimations are performed for a Voronoi-tessellated microstructure, an equiaxed microstructure, and two microstructures with varying grain sizes for tensile loading extending into the fully plastic regime (\(\approx \) 5% extension). Magnitudes of the errors are found to depend on microstructural characteristics, particularly the shape and size of grains. Samples having variations in grain size or having less spherical grains exhibited higher errors than samples with uniformly sized, equiaxed grains, with the size variations having a more pronounced effect. Errors correlate with proximity to grain boundaries at small (elastic) strains and with deformation-induced features (deformation bands) at large strains.
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Fußnoten
1
Rate-dependent crystal plasticity admits plastic flow at any resolved shear stress, but with low rate sensitivity the slip system activity is very small unless the resolved shear stress is close to the slip system strength.
 
Literatur
1.
Zurück zum Zitat Roters F, Eisenlohr P, Hantcherli L, Tjahjanto DD, Bieler TR, Raabe D (2010) Overview of constitutive laws, kinematics, homogenization and multiscale methods in crystal plasticity finite-element modeling: theory, experiments, applications. Acta Mater 58(4):1152–1211CrossRef Roters F, Eisenlohr P, Hantcherli L, Tjahjanto DD, Bieler TR, Raabe D (2010) Overview of constitutive laws, kinematics, homogenization and multiscale methods in crystal plasticity finite-element modeling: theory, experiments, applications. Acta Mater 58(4):1152–1211CrossRef
2.
Zurück zum Zitat Zienkiewicz OC, Taylor RL, Zhu JZ (2005) Chapter 13. The finite element method its basis and fundamentals, 6th edn. Elsevier Butterworth-Heinemann, Amsterdam Zienkiewicz OC, Taylor RL, Zhu JZ (2005) Chapter 13. The finite element method its basis and fundamentals, 6th edn. Elsevier Butterworth-Heinemann, Amsterdam
3.
Zurück zum Zitat Oden JT, Moser R, Ghattas O (2010) Computer predictions with quantified uncertainty, part 1. SIAM News 43(9):1–3 Oden JT, Moser R, Ghattas O (2010) Computer predictions with quantified uncertainty, part 1. SIAM News 43(9):1–3
4.
Zurück zum Zitat Oden JT, Moser R, Ghattas O (2010) Computer predictions with quantified uncertainty, part 2. SIAM News 43(10):1–4 Oden JT, Moser R, Ghattas O (2010) Computer predictions with quantified uncertainty, part 2. SIAM News 43(10):1–4
5.
Zurück zum Zitat Buchheit TE, Wellman GW, Battaile CC (2005) Investigating the limits of polycrystal plasticity modeling. Int J Plast 21:221–249CrossRef Buchheit TE, Wellman GW, Battaile CC (2005) Investigating the limits of polycrystal plasticity modeling. Int J Plast 21:221–249CrossRef
7.
Zurück zum Zitat Rizzi R, Jones RE, Templeton JA, Ostien JT, Boyce BL (2017) Plasticity models of material variability based on uncertainty quantification techniques. arXiv:1802.01487v1 [cond-mat.mtrl-sci] Rizzi R, Jones RE, Templeton JA, Ostien JT, Boyce BL (2017) Plasticity models of material variability based on uncertainty quantification techniques. arXiv:​1802.​01487v1 [cond-mat.mtrl-sci]
8.
Zurück zum Zitat Zienkiewicz Olgierd C, Zhu Jian Z (1987) A simple error estimator and adaptive procedure for practical engineering analysis. Int J Numer Methods Eng 24(2):337–357CrossRef Zienkiewicz Olgierd C, Zhu Jian Z (1987) A simple error estimator and adaptive procedure for practical engineering analysis. Int J Numer Methods Eng 24(2):337–357CrossRef
9.
Zurück zum Zitat Dawson PR, Boyce DE (April 2015) FEpX—finite element polycrystals: theory, finite element formulation, numerical implementation and illustrative examples. ArXiv e-prints Dawson PR, Boyce DE (April 2015) FEpX—finite element polycrystals: theory, finite element formulation, numerical implementation and illustrative examples. ArXiv e-prints
10.
Zurück zum Zitat Kasemer M, Quey R, Dawson P (2017) The influence of mechanical constraints introduced by \(\beta \) annealed microstructures on the yield strength and ductility of Ti–6Al–4V. J Mech Phys Solids 103:179–198CrossRef Kasemer M, Quey R, Dawson P (2017) The influence of mechanical constraints introduced by \(\beta \) annealed microstructures on the yield strength and ductility of Ti–6Al–4V. J Mech Phys Solids 103:179–198CrossRef
11.
Zurück zum Zitat Kasemer M, Echlin MP, Stinville JC, Pollock TM, Dawson P (2017) On slip initiation in equiaxed \(\alpha \)/\(\beta \) Ti–6Al–4V. Acta Mater 136:288–302CrossRef Kasemer M, Echlin MP, Stinville JC, Pollock TM, Dawson P (2017) On slip initiation in equiaxed \(\alpha \)/\(\beta \) Ti–6Al–4V. Acta Mater 136:288–302CrossRef
12.
Zurück zum Zitat Chatterjee K, Echlin MP, Kasemer MP, Callahan PG, Pollock TM, Dawson PR (2018) Prediction of tensile stiffness and strength of Ti–6Al–4V using instantiated volume elements and crystal plasticity. Acta Mater 157:21–32CrossRef Chatterjee K, Echlin MP, Kasemer MP, Callahan PG, Pollock TM, Dawson PR (2018) Prediction of tensile stiffness and strength of Ti–6Al–4V using instantiated volume elements and crystal plasticity. Acta Mater 157:21–32CrossRef
13.
Zurück zum Zitat Ainsworth M, Tinsley Oden J (1997) A posteriori error estimation in finite element analysis. Comput Methods Appl Mech Eng 142(1):1–88CrossRef Ainsworth M, Tinsley Oden J (1997) A posteriori error estimation in finite element analysis. Comput Methods Appl Mech Eng 142(1):1–88CrossRef
14.
Zurück zum Zitat Becker R, Rannacher R (2001) An optimal control approach to a posteriori error estimation in finite element methods. Acta Numer 10:1–102CrossRef Becker R, Rannacher R (2001) An optimal control approach to a posteriori error estimation in finite element methods. Acta Numer 10:1–102CrossRef
15.
Zurück zum Zitat Grätsch T, Bathe K-J (2005) A posteriori error estimation techniques in practical finite element analysis. Comput Struct 83(4):235–265CrossRef Grätsch T, Bathe K-J (2005) A posteriori error estimation techniques in practical finite element analysis. Comput Struct 83(4):235–265CrossRef
16.
Zurück zum Zitat Lütjering G, Williams JC (2007) Titanium. Engineering materials and processes, 2nd edn. Springer, Berlin Lütjering G, Williams JC (2007) Titanium. Engineering materials and processes, 2nd edn. Springer, Berlin
17.
Zurück zum Zitat Quey R, Dawson PR, Barbe F (2011) Large-scale 3D random polycrystals for the finite element method: generation, meshing and remeshing. Comput Method Appl Mech Eng 200(17):1729–1745CrossRef Quey R, Dawson PR, Barbe F (2011) Large-scale 3D random polycrystals for the finite element method: generation, meshing and remeshing. Comput Method Appl Mech Eng 200(17):1729–1745CrossRef
18.
Zurück zum Zitat Wielewski E, Boyce DE, Park J-S, Miller MP, Dawson PR (2017) A methodology to determine the elastic moduli of crystals by matching experimental and simulated lattice strain pole figures using discrete harmonics. Acta Mater 126:469–480CrossRef Wielewski E, Boyce DE, Park J-S, Miller MP, Dawson PR (2017) A methodology to determine the elastic moduli of crystals by matching experimental and simulated lattice strain pole figures using discrete harmonics. Acta Mater 126:469–480CrossRef
19.
Zurück zum Zitat Dawson PR, Boyce DE, Park J-S, Wielewski E, Miller MP (2018) Determining the strengths of HCP slip systems using harmonic analyses of lattice strain distributions. Acta Mater 144:92–106CrossRef Dawson PR, Boyce DE, Park J-S, Wielewski E, Miller MP (2018) Determining the strengths of HCP slip systems using harmonic analyses of lattice strain distributions. Acta Mater 144:92–106CrossRef
20.
Zurück zum Zitat Maddali S, Ta’asan S, Suter RM (2016) Topology-faithful nonparametric estimation and tracking of bulk interface networks. Comput Mater Sci 125:328–340CrossRef Maddali S, Ta’asan S, Suter RM (2016) Topology-faithful nonparametric estimation and tracking of bulk interface networks. Comput Mater Sci 125:328–340CrossRef
21.
Zurück zum Zitat Resk H, Delannay L, Bernacki M, Coupez T, Log’e R (2009) Adaptive mesh refinement and automatic remeshing in crystal plasticity finite element simulations. Model Simul Mater Sci Eng 17:1–22CrossRef Resk H, Delannay L, Bernacki M, Coupez T, Log’e R (2009) Adaptive mesh refinement and automatic remeshing in crystal plasticity finite element simulations. Model Simul Mater Sci Eng 17:1–22CrossRef
22.
Zurück zum Zitat Spearman C (1904) The proof and measurement of association between two things. Am J Psychol 15(1):72–101CrossRef Spearman C (1904) The proof and measurement of association between two things. Am J Psychol 15(1):72–101CrossRef
23.
Zurück zum Zitat McDonald JH (2014) Handbook of biological statistics, 3rd edn. Sparky House Publishing, Baltimore, pp 209–212 McDonald JH (2014) Handbook of biological statistics, 3rd edn. Sparky House Publishing, Baltimore, pp 209–212
24.
Zurück zum Zitat Zwillinger D, Kokoska S (2000) CRC standard probability and statistics tables and formulae, chapter 14.7. Chapman & Hall, London Zwillinger D, Kokoska S (2000) CRC standard probability and statistics tables and formulae, chapter 14.7. Chapman & Hall, London
25.
Zurück zum Zitat Skroch M, Owen SJ, Staten ML, Quadros RW, Hanks B, Clark B, Hensley T, Meyers RJ, Ernst C, Morris R, McBride C, Stimpson C (2019) Cubit geometry and mesh generation toolkit 15.4 user documentation. Sandia National Laboratories Skroch M, Owen SJ, Staten ML, Quadros RW, Hanks B, Clark B, Hensley T, Meyers RJ, Ernst C, Morris R, McBride C, Stimpson C (2019) Cubit geometry and mesh generation toolkit 15.4 user documentation. Sandia National Laboratories
26.
Zurück zum Zitat Knupp PM (2000) Achieving finite element mesh quality via optimization of the Jacobian matrix norm and associated quantities, part I. Int J Numer Methods Eng 48(3):401–420CrossRef Knupp PM (2000) Achieving finite element mesh quality via optimization of the Jacobian matrix norm and associated quantities, part I. Int J Numer Methods Eng 48(3):401–420CrossRef
27.
Zurück zum Zitat Quey R, Renversade L (2018) Optimal polyhedral description of 3D polycrystals: method and application to statistical and synchrotron X-ray diffraction data. Comput Methods Appl Mech Eng 330:308–333CrossRef Quey R, Renversade L (2018) Optimal polyhedral description of 3D polycrystals: method and application to statistical and synchrotron X-ray diffraction data. Comput Methods Appl Mech Eng 330:308–333CrossRef
28.
Zurück zum Zitat Owen SJ, Brown JA, Ernst CD, Lim H, Long KN (2017) Hexahedral mesh generation for computational materials modeling. Procedia Eng 203:167–179CrossRef Owen SJ, Brown JA, Ernst CD, Lim H, Long KN (2017) Hexahedral mesh generation for computational materials modeling. Procedia Eng 203:167–179CrossRef
29.
Zurück zum Zitat Carson R, Dawson P (2019) Formulation and characterization of a continuous crystal lattice orientation finite element method (LOFEM) and its application to dislocation fields. J Mech Phys Solids 126:1–19CrossRef Carson R, Dawson P (2019) Formulation and characterization of a continuous crystal lattice orientation finite element method (LOFEM) and its application to dislocation fields. J Mech Phys Solids 126:1–19CrossRef
30.
Zurück zum Zitat Ahrens J, Geveci B, Law C, Hansen C, Johnson C (2005) ParaView: an end-user tool for large-data visualization. In: Hansen CD, Johnson CR (eds) The visualization handbook, vol 717. Elsevier, Amsterdam, pp 717–731CrossRef Ahrens J, Geveci B, Law C, Hansen C, Johnson C (2005) ParaView: an end-user tool for large-data visualization. In: Hansen CD, Johnson CR (eds) The visualization handbook, vol 717. Elsevier, Amsterdam, pp 717–731CrossRef
Metadaten
Titel
Estimation of Errors in Stress Distributions Computed in Finite Element Simulations of Polycrystals
verfasst von
Kamalika Chatterjee
Robert A. Carson
Paul R. Dawson
Publikationsdatum
18.11.2019
Verlag
Springer International Publishing
Erschienen in
Integrating Materials and Manufacturing Innovation / Ausgabe 4/2019
Print ISSN: 2193-9764
Elektronische ISSN: 2193-9772
DOI
https://doi.org/10.1007/s40192-019-00158-z

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